IP Library Granted Patent US 12,533,748
Granted Patent B2
US 12,533,748 · App. 17/437,820 · Granted Jan 27, 2026

Laser welding device and laser welding method

Inventors: Yukio Yamamoto (Hiroshima, JP); Tomohito Tsudo (Hiroshima, JP); Seiya Takahashi (Hiroshima, JP); Chieko Hashizaka (Hiroshima, JP)
Assignee: DELTA KOGYO CO., LTD.
B23K26/073B23K26/082B23K26/22B23K26/24B23K26/242B23K26/244
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Quick Facts
Patent No.
US 12,533,748
App. No.
17/437,820
Granted
Jan 27, 2026
Kind
B2
Abstract

A laser welding method includes a laser beam irradiation step of oscillating a laser beam and condensing the laser beam on a welding portion, and a scanning step of scanning a spot of the laser beam. In the execution of laser welding, while oscillating the laser beam, a screw portion having a dot shape in a plan view is formed in which a metal member is melted by scanning of the spot so as to circle around a predetermined position, and while the metal member in the screw portion is in a molten state, a linear portion being linear in a plan view and continuous with the screw portion is formed in which a metal member is melted by scanning of the spot so as to be separated from the screw portion.

Claims (4)

1 . A laser welding device that joins a plurality of metal members by laser welding, the laser welding device comprising: a laser oscillator that oscillates a laser beam; scanner that scans a spot of the laser beam while condensing the laser beam on a welding position; and a control unit that controls the laser oscillator and the scanner, wherein while causing the laser oscillator to oscillate the laser beam, the control unit forms a plurality of welding portions, each by forming a screw portion which has a dot shape in a plan view and in which a metal member is melted by scanning of the spot of the laser beam so as to circle around a predetermined position, and while the metal member in the screw portion is in a molten state forming a linear portion which is linear in a plan view, continuous with the screw portion, and does not have a turning point and in which a metal member is melted by straight scanning of the spot of the laser beam so as to be separated from the screw portion, and the plurality of welding portions are aligned along a first direction, and the linear portion of each of the plurality of welding portions extends along a second direction perpendicular to the first direction, wherein each of the plurality of metal members is a plate-like member, and has a shape extending in a direction separated from a position where the plurality of metal members are overlapped with each other, and the control unit causes the spot of the laser beam to be scanned with respect to the overlapped position such that at least a part of the linear portion is located at a starting point position of the separation of the plurality of metal members.

2 . The laser welding device according to claim 1 , wherein the control unit causes the spot of the laser beam to circle in a substantially circular manner in a plan view at the melting of the metal member of the screw portion.

3 . A laser welding method for joining a plurality of metal members by laser welding, the laser welding method comprising: a laser beam irradiation step of oscillating a laser beam and condensing the oscillated laser beam on a welding position; and a scanning step of scanning a spot of the laser beam, wherein in a state where the laser beam is oscillated, a plurality of welding portions is formed, each by forming a screw portion having a dot shape in a plan view in which a metal member is melted by scanning of the spot of the laser beam so as to circle around a predetermined position, and forming a linear portion being linear in a plan view, continuous with the screw portion, and not having a turning point in which a metal member is melted by straight scanning of the spot of the laser beam so as to be separated from the screw portion while the metal member in the screw portion is in a molten state, wherein the plurality of welding portions are aligned along a first direction, and the linear portion of each of the plurality of welding portions extends along a second direction perpendicular to the first direction, wherein each of the plurality of metal members is a plate-like member, and has a shape extending in a direction separated from a position where the plurality of metal members are overlapped with each other, and in the scanning step, the spot of the laser beam is scanned with respect to the overlapped position such that at least a part of the linear portion is located at a starting point position of the separation of the plurality of metal members.

4 . The laser welding method according to claim 3 , wherein in the scanning step, at the melting of the metal member of the screw portion, the spot of the laser beam is caused to circle in a substantially circular manner in a plan view.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 9, 2021
From: YAMAMOTO, YUKIO; TSUDO, TOMOHITO; TAKAHASHI, SEIYA; HASHIZAKA, CHIEKO
To: DELTA KOGYO CO., LTD.
Reel/Frame 057439/0258 →
Priority Claims (1)
JP 2019-064957 · Mar 28, 2019 · national
Continuity (1)
Related Publication 20220152736A1 · May 19, 2022
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